BACKGROUND
[0001] This invention relates to electronic digital communication systems and more particularly
to receivers in wireless communication systems.
[0002] Digital communication systems include time-division multiple access (TDMA) systems,
such as cellular radio telephone systems that comply with the GSM telecommunication
standard and its enhancements like GSM/EDGE, and code-division multiple access (CDMA)
systems, such as cellular radio telephone systems that comply with the IS-95, cdma2000,
and wideband CDMA (WCDMA) telecommunication standards. Digital communication systems
also include "blended" TDMA and CDMA systems, such as cellular radio telephone systems
that comply with the universal mobile telecommunications system (UMTS) standard, which
specifies a third generation (3G) mobile system being developed by the European Telecommunications
Standards Institute (ETSI) within the International Telecommunication Union's (ITU's)
IMT-2000 framework. The Third Generation Partnership Project (3GPP) promulgates the
UMTS and WCDMA standards. This application focusses on WCDMA systems for simplicity,
but it will be understood that the principles described in this application can be
implemented in other digital communication systems.
[0003] WCDMA is based on direct-sequence spread-spectrum techniques, with pseudo-noise scrambling
codes and orthogonal channelization codes separating base stations and physical channels
(terminals or users), respectively, in the downlink (base-to-terminal) direction.
Since all users share the same radio frequency (RF) resource in CDMA systems, it is
important that each physical channel does not use more power than necessary. This
is achieved by a transmit power control (TPC) mechanism, in which, among other things,
base stations send TPC commands to users in the downlink (DL) direction and the users
implement the commands in the uplink (UL) direction and
vice versa. The TPC commands cause the users to increase or decrease their transmitted power
levels by increments, thereby maintaining target signal-to-interference ratios (SIRs)
for the dedicated physical channels (DPCHs) between the base stations and the users.
The DPCHs include dedicated physical data channels (DPDCHs) and dedicated physical
control channels (DPCCHs) in the UL and the DL. A DPDCH carries higher-layer network
signaling and possibly also speech and/or video services, and a DPCCH carries physical-layer
control signaling (e.g., pilot symbols/signals, TPC commands, etc.). WCDMA terminology
is used here, but it will be appreciated that other systems have corresponding terminology.
Scrambling and channelization codes and transmit power control are well known in the
art.
[0004] FIG. 1 depicts a communication system such as a WCDMA system that includes a base
station (BS) 100 handling connections with, in this example, four mobile stations
(MSs) 1, 2, 3, 4. In the downlink, BS 100 transmits to each mobile at a respective
power level, and the signals transmitted by BS 100 are spread using orthogonal code
words. In the uplink, MS 1-MS 4 transmit to BS 100 at respective power levels. Each
BS, which is called a Node B in 3GPP parlance, in the system serves a geographical
area that can be divided into one or more cell(s). The BSs are coupled to corresponding
radio network controllers (RNCs, not shown in FIG. 1) by dedicated telephone lines,
optical fiber links, microwave links, etc. An RNC directs MS, or user equipment (UE),
calls via the appropriate BSs, and the RNCs are connected to external networks such
as the public switched telephone network (PSTN), the Internet, etc. through one or
more core network nodes, such as a mobile switching center (not shown) and/or a packet
radio service node (not shown).
[0005] WCDMA is designed to operate at low signal-to-noise ratios (SNRs), and therefore
the WCDMA algorithms, for instance, the SIR estimators and automatic frequency control
(AFC) algorithms, are designed for such scenarios. For example, the SIR estimation
algorithm, which is used in the transmit power control (TPC) scheme to achieve sufficient
quality of service (QoS), is designed to be used at low SIRs. QoS is often quantified
by block error rate (BLER). It will be understood that, in WCDMA systems (and other
communication systems that employ direct-sequence (DS) spread-spectrum techniques),
the noise (N) includes thermal noise and interference because the spreading of the
signals makes interference signals appear noise-like (i.e., spread out in frequency
and with a level in the noise floor) due to the interference signals' "wrong" spreading
codes.
[0007] In such a communication system, the BS transmits predetermined pilot symbols on the
UE's DPCH. The BS also transmits pilot symbols on a common pilot channel (CPICH),
and a UE typically uses the CPICH pilot symbols in estimating the impulse response
of the radio channel to the BS. It will be recognized that the UE uses the CPICH pilots
for channel estimation, rather than the DPCH pilots, due to the CPICH's typically
higher SNR, but the UE still uses the DPCH pilots, mainly for SIR estimation, i.e.,
for DL power control.
[0008] It is also known that a better SIR estimator gives better receiver performance, measured
as the amount of power needed for a given BLER target, with lower power needed being
better. In order to improve the SIR estimator in WCDMA, one can use the CPICH for
the I estimate and use only the DPCH pilots for estimating the S part of the SIR.
This is described in, for example,
U.S. Patent Application Publication No. 2005/0094816 by Lindoff et al. for "Interference Estimation in CDMA Systems Using Alternative Scrambling Codes".
The following five equations express such a SIR estimator.
[0009] For the S, the wanted signal estimate S
iDPCH is given by:

where:

and n
p is the number of DPCH pilot symbols u
kP per slot, y
DPCH,
i(k) is the de-spread DPCH pilot symbol at the time instant k for rake finger i, and
* means complex conjugate.
[0010] For the I, the interference signal estimate I
iDPCH is given by:

where SF
C is the spreading factor for the channel, e.g., the CPICH, used to calculate the I
estimate, and SF
D is the spreading factor for the channel, e.g., the DPCH, to which the I estimate
is to be translated, in case these are different channels, and:

where u
kCPICH is the CPICH pilot symbol k,
ĥCPICH,i is the CPICH channel estimate for tap i, y
CPICH,
i(k) is the de-spread CPICH pilot symbol at time instant k for rake finger i, and N
C is the number of pilot symbols per slot for the channel used to obtain the I estimate.
SF
C is typically 256 and the CPICH has ten pilot symbols per slot in a WCDMA communication
system. In this example, the CPICH symbols in one slot (i.e., 10 symbols) are used
to determine the I-estimate. It will be appreciated that different numbers of symbols
may be used, and different communication systems may have different numbers of symbols
in a slot.
[0011] For the SIR estimate SIR
EST:

where n
f is the number of rake fingers.
[0012] In laboratory tests and benchmark scenarios, good signal quality is often assumed,
which is to say that the terminal operates with good SNR. Also in such cases, good
terminal behavior is needed, which means that the needed downlink power should be
small if the SNR of the CPICH is high. A "non-good" terminal behavior is described
below, involving long power control loop transients. In such scenarios, the residual
frequency error, which is the frequency error remaining after the AFC has corrected
the tuning of the receiver, affects the I-estimate more than it affects the BLER.
It will be appreciated that a SIR-to-BLER mapping that is heavily dependent on the
interference level changes the SIR reference value in the outer loop power control,
and due to the slow response of the outer loop power control, long transients occur,
in which the downlink power level is set too high. Thus, erroneous SIR estimates are
obtained in these scenarios.
[0013] The patent
US 5,933,768 describes an apparatus and associated method for estimating interfering-signal component
portion of a receive signal received at a receiver. Once the training sequence of
the interfering-signal component portion is determined, the receive signal is selectively,
jointly detected utilizing a joint detector, the interfering-signal component portion
of the receive signal is better able to be canceled or suppressed. The outcome of
the detection of interference is not used to change interference estimation technique.
[0014] The patent
US 5,659,583 describes techniques in a QAM digital communication system for canceling one or more
interference tones in an incoming signal to produce an output signal by generating
an estimate of the interference tone during current processing interval, subtracting
the estimate to produce the output signal and modifying, if necessary, adaptive circuitry
for use during the next processing interval.
SUMMARY
[0015] It is desirable to avoid the behaviors of current SIR estimation algorithms with
better algorithms for estimating interference I (and SIR) in the presence of residual
frequency errors. The inventors have observed that in scenarios where the interference
is low, the I-estimation process is dominated by the residual frequency error. This
affects the SIR estimate but not the BLER, and therefore, when situations having low
interference are detected, the I-estimation strategy, which is a part of estimating
the SIR, can be changed such that it compensates for the effects of residual frequency
errors.
[0016] According to one aspect of the invention, there is provided a method of estimating
an interference level of a signal received in a receiver. The method includes the
steps of detecting an interference level of the received signal; determining whether
the detected interference level is low; and if the detected interference level is
low, estimating the interference level by at least one of estimating in only a radial
direction and de-rotating the received signal before estimating the interference level.
[0017] According to another aspect of the invention, there is provided an apparatus for
estimating an interference level of a signal received in a receiver. The apparatus
includes a detector configured to detect an interference level of the received signal;
and a processor configured to determine whether the detected interference level is
low, and if the detected interference level is low, to estimate the interference level
by at least one of estimating in only a radial direction and de-rotating the received
signal before estimating the interference level.
[0018] According to yet another aspect of the invention, there is provided a computer-readable
storage medium containing a computer program for estimating an interference level
of a signal received in a receiver. The computer program performs the steps of detecting
an interference level of the received signal; determining whether the detected interference
level is low; and if the detected interference level is low, estimating the interference
level by at least one of estimating in only a radial direction and de-rotating the
received signal before estimating the interference level.
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The various aspects, features, and advantages of this invention will be understood
by reading this description in conjunction with the drawings, in which:
FIG. 1 depicts a communication system;
FIG. 2 is a block diagram of an exemplary user equipment in a communication system;
FIG. 3 is a flow chart of a method of estimating an interference level; and
FIG. 4 is a flow chart of a modified method of estimating an interference level.
DETAILED DESCRIPTION
[0020] FIG. 2 is a block diagram of a portion of receiver 200, such as a mobile terminal
in a WCDMA communication system, that is in accordance with aspects of the invention.
A radio signal is received by a suitable antenna 202 and down-converted and sampled
to a baseband signal by a front-end receiver (FeRX) 204. The down-conversion is made
assuming a carrier frequency f
C. The samples of the baseband signal are then fed to a path searcher 206 that correlates
the received signal samples with a known pilot signal and estimates a path delay profile,
which is fed to a rake combiner 208 and to a channel estimator and SIR estimator 210.
The rake combiner 208 and channel estimator 210 de-spread the pilot channel, estimate
the impulse response of the radio channel, and de-spread and combine received echoes
of the received data and control symbols. Other blocks in FIG. 2 are described below,
and it will be understood that the receiver can be implemented by other arrangements
of the functional blocks shown in FIG. 2.
[0021] Rake combining and channel estimation are well known in the art. Various aspects
of rake receivers are described in
G. Turin, "Introduction to Spread-Spectrum Antimultipath Techniques and Their Application
to Urban Digital Radio", Proc. IEEE, vol. 68, pp. 328-353 (March 1980);
U.S. Patents No. 5,305,349 to Dent for "Quantized Coherent Rake Receiver"; No.
6,363,104 to Bottomley for "Method and Apparatus for Interference Cancellation in a Rake Receiver"; and
No.
6,801,565 to Wang et al. for "Multi-Stage Rake Combining Methods and Apparatus"; and
U.S. Patent Application Publication No. 2001/0028677 by Wang et al. for "Apparatus and Methods for Finger Delay Selection in Rake Receivers". Channel
estimation is described in, for example,
U.S. Patent Application Publication No. 2005/0105647 by Wilhelmsson et al. for "Channel Estimation by Adaptive Interpolation".
[0022] As depicted by the flow chart of FIG. 3, methods of estimating interference levels
can include or be improved by including a step of detecting an interference level
I (step 302) and then determining (step 304) whether the detected I level is low.
Situations having low interference can be detected, for example, by estimating the
received signal quality, e.g., the ratio of chip energy to interference energy
EC/
I0, and then by determining whether that quantity has crossed a threshold. For example,
a suitable estimate of the received signal quality is the received signal code power
(RSCP) divided by the received signal strength indicator (RSSI), e.g.,
EClI0 = RSCP/RSSI, where RSCP =
EC is the signal code power of the CPICH. The signal quality estimate and RSCP and RSSI
values are advantageously generated by the path searcher 206, and one or more are
provided to higher-layer processes (for handover measurements, for example) and, according
to embodiments of this invention, to a control unit (CU) 212. Comparison of the signal
quality estimate to the threshold, which may be set through operation of software
programming of the control unit, can be performed by a suitably configured or programmed
processor CU 212 or even by a suitable comparator. With respect to a suitable value
or range of values for the threshold, it is currently believed that the signal level
is starting to be good enough when
EClI0 is about -8 dB for a WCDMA communication system.
[0023] It will be understood that situations having low interference levels can be detected
in other ways, too. For example, rather than considering the
EClI0 of the CPICH as described above, the SIR of the CPICH can be considered, according
to the following expression:

An advantage of using the SIR rather than
EC/
I0 is that the SIR measurement does not include the orthogonal interference that does
not affect the performance of the terminal.
[0024] It will also be understood that SIR estimation and the other steps of the methods
described here are advantageously carried out once per time slot, if the SIR is used,
or once per 30-100 milliseconds, if the
EClI0 ratio is used, in a WCDMA communication system. In other communication systems, these
methods are carried out in ways that are system dependent.
[0025] If the detected I level is not low, the I estimate can be generated in the conventional
way using Eqs. 3 and 4 above (step 306). If the I level is low, i.e.,
EClI0 is high (e.g., greater than -8 dB), that information, which is indicated in FIG.
2 as a yes/no signal, is fed to the channel and SIR estimators 210, which generate
an I estimate (step 308) by carrying out an I-estimation method corresponding to that
information as explained in more detail below. The estimators 210 also generate estimates
of the channel filter taps h in any of several ways that are well known in the art.
The h and I estimates are then used by the rake combiner 208 for decoding the received
signal, and to generate a SIR estimate that is used in further processing, including
in the power control loop in a manner that is known in the art.
I-estimation methods
[0026] The residual frequency error is typically 0-50 Hz and is currently believed to be
the dominant contributor to the interference quantified by the I-estimate. In general,
when there is a (small) residual frequency error between the frequency of a received
carrier signal and the frequency of the receiver's local oscillator (LO) 214, the
de-spread CPICH symbols can be written as:

which is to say that the frequency error can be seen as a symbol rotation by a phase
shift Δ = 2πf
e/R
C between consecutive symbols k, k+1, where f
e is the residual frequency error, R
C is the symbol rate, and y-bar is the zero-error symbol. For a WCDMA system, R
C = (chip rate)/SF
C = (3.84 MHz)/SF
C, and the symbol rate for the CPICH, for example, having SF
C = 256, is thus R
C =15000 symbols per second, and N
C = 10 CPICH pilot symbols per slot. For the case of low
EC/
I0, the S and I estimates are made conventionally, according to Eqs. 1-4 above, but
for the case of high
EC/
I0, and therefore interference dominated by the residual frequency error, either or
both of the following modified methods can advantageously be used for I-estimation.
Method 1: Estimate I in only the radial direction
[0027] In one embodiment of the invention, one modified method of estimating the interference
I (excluding interference due to frequency error) for small residual frequency errors
(say, less than 50 Hz in a WCDMA system) uses the following equations:

and

where φ is the angle of
ĥCPICH,i Re(x) means the real part of the complex quantity x, and the other quantities are
as defined above. The modified method (step 308 in FIG. 3) thus comprises computing
an I estimate according to Eqs. 8 and 9. With this I estimate, a SIR estimate can
be computed according to Eq. 5 above.
[0028] It will be understood that the "radial direction" is parallel to the real coordinate
axis due to the compensation with the angle of the channel estimate. It will also
be appreciated that in many receivers, the residual frequency error is in the range
of 10-60 Hz due to quantization. In order to get good estimates using Method 1, the
residual frequency error should be less than about 100 Hz in a WCDMA communication
system.
Method 2: De-rotate the signal before computing I
[0029] According to another embodiment of the invention, a modified method of estimating
the interference I involves compensating received symbols or samples based on corresponding
estimates of the residual frequency error. Estimates of the residual frequency error
can be obtained easily from an AFC device 216 in the receiver 200 that operates in
a manner that is well known in the art. For example,
U.S. Patent No. 6,606,363 to Atarius et al. describes methods and apparatus for estimating a frequency offset by combining pilot
symbols and data symbols, and International Publication No.
WO 02/29978 A2 by Dent et al. describes methods and apparatus for automatic frequency control in a CDMA receiver.
The steps of such a modified method are depicted in the flow chart of FIG. 4 and include:
estimating the residual frequency error fe (step 402), e.g., by obtaining such an estimate from the AFC device 216; and
de-rotating received CPICH symbols with a corresponding phase shift for each symbol
(step 404) according to the following expression:

where
ỹCPICH,i (k) are the de-rotated symbols, Δ = 2πf
e/R
C and the other parameters are as described above.
[0030] Then, using the de-rotated symbols
ỹCPICH,i (k), the interference level I and the SIR can be estimated according to Eqs. 1-5 above.
It should be understood that Eq. 10 may be used with a channel other than the CPICH,
e.g., a DPCH.
[0031] In general, Method 2 is "better" than Method 1 from a performance point of view because
it corrects for the (estimated) residual frequency error before computing the interference,
but Method 2 can be more difficult to implement. Method 1 estimates the noise in only
one direction (the radial direction); because the noise in the orthogonal direction
is assumed to be the same, the total interference is estimated as twice the interference
in the radial direction. Furthermore, Method 1 is a good approximation for small residual
frequency errors. It is currently believed that in some implementations, Method 1
is easier than Method 2, but in other implementations, Method 2 is easier than Method
1. It will be understood, of course, that in other implementations, Methods 1 and
2 can be used in combination.
[0032] It will be appreciated that procedures described above are carried out repetitively
as necessary, for example, to respond to the time-varying nature of communication
channels between transmitters and receivers. In addition, this description is written
in terms of channels such as the DPCH and CPICH, but it will be understood that other
channels may also be suitable. Using the CPICH pilot symbols is advantageous because
the CPICH covers the entire area of a cell in a WCDMA system and the pilots are sent
continuously. Nevertheless, estimating I on another channel, such as directly on the
DPCH, can be done, in which case Eq. 8 uses the DPCH parameters instead and the translation
of Eq. 9 is omitted.
[0033] To facilitate understanding, many aspects of this invention are described in terms
of sequences of actions that can be performed by, for example, elements of a programmable
computer system. It will be recognized that various actions could be performed by
specialized circuits (e.g., discrete logic gates interconnected to perform a specialized
function or application-specific integrated circuits), by program instructions executed
by one or more processors, or by a combination of both. Wireless receivers implementing
embodiments of this invention can be included in, for example, mobile telephones,
pagers, headsets, laptop computers and other mobile terminals, and the like.
[0034] Moreover, this invention can additionally be considered to be embodied entirely within
any form of computer-readable storage medium having stored therein an appropriate
set of instructions for use by or in connection with an instruction-execution system,
apparatus, or device, such as a computer-based system, processor-containing system,
or other system that can fetch instructions from a medium and execute the instructions.
As used here, a "computer-readable medium" can be any means that can contain, store,
communicate, propagate, or transport the program for use by or in connection with
the instruction-execution system, apparatus, or device. The computer-readable medium
can be, for example but not limited to, an electronic, magnetic, optical, electromagnetic,
infrared, or semiconductor system, apparatus, device, or propagation medium. More
specific examples (a non-exhaustive list) of the computer-readable medium include
an electrical connection having one or more wires, a portable computer diskette, a
random-access memory (RAM), a read-only memory (ROM), an erasable programmable read-only
memory (EPROM or Flash memory), and an optical fiber.
[0035] Thus, the invention may be embodied in many different forms, not all of which are
described above, and all such forms are contemplated to be within the scope of the
invention. For each of the various aspects of the invention, any such form may be
referred to as "logic configured to" perform a described action, or alternatively
as "logic that" performs a described action.
[0036] It is emphasized that the terms "comprises" and "comprising", when used in this application,
specify the presence of stated features, integers, steps, or components and do not
preclude the presence or addition of one or more other features, integers, steps,
components, or groups thereof.
[0037] The particular embodiments described above are merely illustrative and should not
be considered restrictive in any way. The scope of the invention is determined by
the following claims.
1. A method of estimating an interference level of a signal received in a receiver, comprising
the steps of:
detecting (302) an interference level of the received signal;
determining (304) whether the detected interference level is low; and
characterized in that, if the detected interference level is low, estimating (308) the interference level
by at least one of the following: estimating in only a radial direction or de-rotating
the received signal before estimating the interference level.
2. The method of claim 1, wherein the interference level is detected by estimating a
quality of the received signal and determining whether the detected interference level
is low includes determining whether the quality has crossed a predetermined threshold.
3. The method of claim 2, wherein the quality is a ratio of chip energy to interference
energy.
4. The method of claim 3, wherein the quality is a received signal code power divided
by a received signal strength indicator.
5. The method of claim 1, wherein the radial direction is parallel to a real coordinate
axis.
6. The method of claim 5, wherein the interference level is estimated in only a radial
direction according to

and

where
IiDPCH is an estimate of an interference level on a first channel DPCH for a receiver tap
i,
IiCPICH is an estimate of an interference level on a second channel CPICH for the tap i,
k is a time index, SF
C is a spreading factor for the second channel, SF
D is a spreading factor for the first channel, N
C is a number of symbols per slot on the second channel, ϕ is an angle of
ĥCPICH,i, y
CPICH,i(k) is a de-spread pilot symbol of the second channel at time instant k for tap i,
ĥCPICH,i is a channel estimate of the second channel for tap i, and u
kCPICH is a pilot symbol of the second channel at time instant k.
7. The method of claim 1, wherein the received signal is de-rotated by estimating (402)
a residual frequency error, and de-rotating (404) symbols in the received signal with
a corresponding phase shift for each symbol, the corresponding phase shifts being
given by:

where
ỹCPlCH,i(
k) are de-rotated symbols of a channel CPICH, k is an index, f
e is the residual frequency error, N
C is a number of symbols per slot on the channel, and R
C is a symbol rate on the channel, and using de-rotated symbols
ỹCPICH,i(k) to estimate the interference level.
8. The method of claim 1, wherein the receiver operates in a wideband code division multiple
access wireless communication system.
9. An apparatus for estimating an interference level of a signal received in a receiver
(200), comprising:
a detector (208, 210) configured to detect an interference level of the received signal;
and
a processor (212) configured to determine whether the detected interference level
is low;
characterized in that the processor is further configured to, if the detected interference level is low,
estimate the interference level by at least one of the following: estimating in only
a radial direction or de-rotating the received signal before estimating the interference
level.
10. The apparatus of claim 9, wherein the detector (208, 210) detects the interference
level by estimating a quality of the received signal and the processor (212) determines
whether the quality has crossed a predetermined threshold.
11. The apparatus of claim 10, wherein the quality is a ratio of chip energy to interference
energy.
12. The apparatus of claim 11, wherein the quality is a received signal code power divided
by a received signal strength indicator.
13. The apparatus of claim 9, wherein the radial direction is parallel to a real coordinate
axis.
14. The apparatus of claim 13, wherein the processor (212) is configured to estimate the
interference level in only a radial direction according to

and

where

is an estimate of an interference level on a first channel DPCH for a receiver tap
i,

is an estimate of an interference level on a second channel CPICH for the tap i,
k is a time index, SF
C is a spreading factor for the second channel, SF
D is a spreading factor for the first channel, N
C is a number of symbols per slot on the second channel, ϕ is an angle of
ĥCPCH,i, y
CPICH,i(k) is a de-spread pilot symbol of the second channel at time instant k for tap i,
ĥCPICH,i is a channel estimate of the second channel for tap i, and u
kCPICH is a pilot symbol of the second channel at time instant k.
15. The apparatus of claim 9, wherein the processor (212) is configured to de-rotate the
received signal by estimating a residual frequency error, and de-rotating symbols
in the received signal with a corresponding phase shift for each symbol, the corresponding
phase shifts being given by:

where
ỹCPICH, i(k) are de-rotated symbols of a channel CPICH, k is an index, f
e is the residual frequency error, N
C is a number of symbols per slot on the channel, and R
C is a symbol rate on the channel, and using de-rotated symbols ỹ
CPICH,i(k) to estimate the interference level.
16. The apparatus of claim 9, wherein the receiver (200) operates in a wideband code division
multiple access wireless communication system.
17. A computer-readable storage medium containing a computer program for estimating an
interference level of a signal received in a receiver, wherein the computer program
performs the steps of:
detecting (302) an interference level of the received signal;
determining (304) whether the detected interference level is low; and
characterized in that the computer program further performs, if the detected interference level is low,
estimating (308) the interference level by at least one of the following: estimating
in only a radial direction or de-rotating the received signal before estimating the
interference level.
18. The medium of claim 17, wherein the interference level is detected by estimating a
quality of the received signal and determining whether the detected interference level
is low includes determining whether the quality has crossed a predetermined threshold.
19. The medium of claim 17, wherein the interference level is estimated in only a radial
direction according to

and

where

is an estimate of an interference level on a first channel DPCH for a receiver tap
i,

is an estimate of an interference level on a second channel CPICH for the tap i,
k is a time index, SF
C is a spreading factor for the second channel, SF
D is a spreading factor for the first channel, N
C is a number of symbols per slot on the second channel, ϕ is an angle of
ĥCPICH,i, y
CPICH,i(k) is a de-spread pilot symbol of the second channel at time instant k for tap i,
ĥCPICH,i is a channel estimate of the second channel for tap i, and u
kCPICH is a pilot symbol of the second channel at time instant k.
20. The medium of claim 17, wherein the received signal is de-rotated by estimating (402)
a residual frequency error, and de-rotating (404) symbols in the received signal with
a corresponding phase shift for each symbol, the corresponding phase shifts being
given by:

where
ỹCPICH,i(k) are de-rotated symbols of a channel CPICH, k is an index, f
e is the residual frequency error, N
C is a number of symbols per slot on the channel, and R
C is a symbol rate on the channel, and using de-rotated symbols
ỹCPICH,i(k) to estimate the interference level.
1. Verfahren zur Schätzung eines Störpegels eines Signals, das in einem Empfänger empfangen
wird, umfassend die folgenden Schritte:
Erfassen (302) eines Störpegels des empfangenen Signals;
Bestimmen (304), ob der erfasste Störpegel niedrig ist; und
gekennzeichnet durch Schätzen (308), wenn der erfasste Störpegel niedrig ist, des Störpegels durch mindestens eines von Folgendem: Schätzen in nur einer radialen Richtung oder Derotieren
des empfangenen Signals vor dem Schätzen des Störpegels.
2. Verfahren nach Anspruch 1, wobei der Störpegel durch Schätzen einer Qualität des empfangenen
Signals erfasst wird und das Bestimmen, ob der erfasste Störpegel niedrig ist, ein
Bestimmen umfasst, ob die Qualität eine vorgegebene Schwelle überschritten hat.
3. Verfahren nach Anspruch 2, wobei es sich bei der Qualität um ein Verhältnis von Chip-Energie
zu Störenergie handelt.
4. Verfahren nach Anspruch 3, wobei es sich bei der Qualität um eine Codeleistung des
empfangenen Signals geteilt durch einen Indikator der Stärke des empfangenen Signals
handelt.
5. Verfahren nach Anspruch 1, wobei die radiale Richtung parallel zu einer realen Koordinationsachse
ist.
6. Verfahren nach Anspruch 5, wobei der Störpegel in nur einer radialen Richtung gemäß

und

geschätzt wird, wobei

eine Schätzung eines Störpegels auf einem ersten Kanal DPCH für eine Empfängeranzapfung
i ist,

eine Schätzung eines Störpegels auf einem zweiten Kanal CPICH für die Abzapfung i
ist, k ein Zeitindex ist, SF
C ein Spreizfaktor für den zweiten Kanal ist, SF
D ein Spreizfaktor für den ersten Kanal ist, N
C eine Anzahl von Symbolen pro Schlitz auf dem zweiten Kanal ist, ϕ ein Winkel von
ĥCPICH,i ist, y
CPICH,i(k) ein Entspreizungs-Pilotsymbol des zweiten Kanals zum Zeitpunkt k für die Abzapfung
i ist,
ĥCPICH,i eine Kanalschätzung des zweiten Kanals für die Anzapfung i ist, und

ein Pilotsymbol des zweiten Kanals zum Zeitpunkt k ist.
7. Verfahren nach Anspruch 1, wobei das empfangene Signal derotiert wird durch Schätzen
(402) eines Restfrequenzfehlers und Derotieren (404) von Symbolen im empfangenen Signal
mit einer entsprechenden Phasenverschiebung für jedes Symbol, wobei die entsprechenden
Phasenverschiebungen gegeben sind durch:

wobei
ỹCPICH,i (k) derotierte Symbole eines Kanals CPICH sind, k ein Index ist, f
e der Restfrequenzfehler ist, N
C eine Anzahl von Symbolen pro Schlitz auf dem Kanal ist, und R
C eine Symbolrate auf dem Kanal ist, und Verwenden von derotierten Symbolen
ỹCPICH,i (k), um den Störpegel zu schätzen.
8. Verfahren nach Anspruch 1, wobei der Empfänger in einem drahtlosen Kommunikationssystem
mit Breitband-Codemultiplexzugriff funktioniert.
9. Vorrichtung zum Schätzen eines Störpegels eines Signals, das in einem Empfänger (200)
empfangen wird, umfassend:
einen Detektor (208, 210), der so konfiguriert ist, dass er einen Störpegel des empfangenen
Signals erfasst; und
einen Prozessor (212), der so konfiguriert ist, dass er bestimmt, ob der erfasste
Störpegel niedrig ist;
dadurch gekennzeichnet, dass der Prozessor ferner so konfiguriert ist, dass er, wenn der erfasste Störpegel niedrig
ist, den Störpegel durch mindestens eines von Folgendem schätzt: Schätzen in nur einer
radialen Richtung oder Derotieren des empfangenen Signals vor dem Schätzen des Störpegels.
10. Vorrichtung nach Anspruch 9, wobei der Detektor (208, 210) den Störpegel durch Schätzen
einer Qualität des empfangenen Signals erfasst, und der Prozessor (212) bestimmt,
ob die Qualität eine vorgegebene Schwelle überschritten hat.
11. Vorrichtung nach Anspruch 10, wobei es sich bei der Qualität um ein Verhältnis von
Chip-Energie zu Störenergie handelt.
12. Vorrichtung nach Anspruch 11, wobei es sich bei der Qualität um eine Codeleistung
des empfangenen Signals geteilt durch einen Indikator der Stärke des empfangenen Signals
handelt.
13. Vorrichtung nach Anspruch 9, wobei die radiale Richtung parallel zu einer realen Koordinationsachse
ist.
14. Vorrichtung nach Anspruch 13, wobei der Prozessor (212) so konfiguriert ist, dass
er den Störpegel in nur einer radialen Richtung gemäß

und

schätzt, wobei
IiDPCH eine Schätzung eines Störpegels auf einem ersten Kanal DP C H für eine Empfängeranzapfung
i ist,
IiCPICH eine Schätzung eines Störpegels auf einem zweiten Kanal CPICH für die Abzapfung i
ist, k ein Zeitindex ist, SF
C ein Spreizfaktor für den zweiten Kanal ist, SF
D ein Spreizfaktor für den ersten Kanal ist, N
C eine Anzahl von Symbolen pro Schlitz auf dem zweiten Kanal ist, ϕ ein Winkel von
ĥCPICH,i ist, y
CPICH,i (k) ein Entspreizungs-Pilotsymbol des zweiten Kanals zum Zeitpunkt k für die Abzapfung
i ist,
ĥCPICH,i eine Kanalschätzung des zweiten Kanals für die Anzapfung i ist, und u
kCPICH ein Pilotsymbol des zweiten Kanals zum Zeitpunkt k ist.
15. Vorrichtung nach Anspruch 9, wobei der Prozessor (212) so ausgelegt ist, dass er das
empfangene Signal d e r o t i e r t d u r c h S c hätzen (402) eines Restfrequenzfehlers
und Derotieren (404) von Symbolen im empfangenen Signal mit einer entsprechenden Phasenverschiebung
für jedes Symbol, wobei die entsprechenden Phasenverschiebungen gegeben sind durch:

wobei
ỹCPICH,i (k) derotierte Symbole eines Kanals CPICH sind, k ein Index ist, f
e der Restfrequenzfehler ist, N
C eine Anzahl von Symbolen pro Schlitz auf dem Kanal ist, und R
C eine Symbolrate auf dem Kanal ist, und Verwenden von derotierten Symbolen
ỹCPICH,i (k), um den Störpegel zu schätzen.
16. Vorrichtung nach Anspruch 9, wobei der Empfänger (200) in einem drahtlosen Kommunikationssystem
mit Breitband-Codemultiplexzugriff funktioniert.
17. Computerlesbares Speichermedium, das ein Computerprogramm zum Schätzen eines Störpegels
eines Signals enthält, das in einem Empfänger empfangen wird, wobei das Computerprogramm
die folgenden Schritte ausführt:
Erfassen (302) eines Störpegels des empfangenen Signals;
Bestimmen (304), ob der erfasste Störpegel niedrig ist; und
dadurch gekennzeichnet, dass das Computerprogramm ferner, wenn der erfasste Störpegel niedrig ist, das Schätzen
(308) des Störpegels durch mindestens eines von Folgendem durchführt: Schätzen in
nur einer radialen Richtung oder Derotieren des empfangenen Signals vor dem Schätzen
des Störpegels.
18. Medium nach Anspruch 17, wobei der Störpegel durch Schätzen einer Qualität des empfangenen
Signals erfasst wird und das Bestimmen, ob der erfasste Störpegel niedrig ist, ein
Bestimmen umfasst, ob die Qualität eine vorgegebene Schwelle überschritten hat.
19. Medium nach Anspruch 17, wobei der Störpegel in nur einer radialen Richtung gemäß

und

geschätzt wird, wobei
IiDPCH eine Schätzung eines Störpegels auf einem ersten Kanal DPCH für eine Empfängeranzapfung
i ist,
IiCPICH eine Schätzung eines Störpegels auf einem zweiten Kanal CPICH für die Abzapfung i
ist, k ein Zeitindex ist, SF
C ein Spreizfaktor für den zweiten Kanal ist, SF
D ein Spreizfaktor für den ersten Kanal ist, N
C eine Anzahl von Symbolen pro Schlitz auf dem zweiten Kanal ist, ϕ ein Winkel von
ĥCPICH,i ist, y
CPICH,i (k) ein Entspreizungs-Pilotsymbol des zweiten Kanals zum Zeitpunkt k für die Abzapfung
i ist,
ĥCPICH,i eine Kanalschätzung des zweiten Kanals für die Anzapfung i ist, und u
kCPICH ein Pilotsymbol des zweiten Kanals zum Zeitpunkt k ist.
20. Medium nach Anspruch 17, wobei das empfangene Signal derotiert wird durch Schätzen
(402) eines Restfrequenzfehlers und Derotieren (404) von Symbolen im empfangenen Signal
mit einer entsprechenden Phasenverschiebung für jedes Symbol, wobei die entsprechenden
Phasenverschiebungen gegeben sind durch:

wobei
ŷCPICH,i (k) derotierte Symbole eines Kanals CPICH sind, k ein Index ist, f
e der Restfrequenzfehler ist, N
C eine Anzahl von Symbolen pro Schlitz auf dem Kanal ist, und R
C eine Symbolrate auf dem Kanal ist, und Verwenden von derotierten Symbolen
ỹCPICH,i (k), um den Störpegel zu schätzen.
1. Procédé d'estimation d'un niveau d'interférence d'un signal reçu dans un récepteur,
comprenant les étapes consistant à:
détecter (302) un niveau d'interférence du signal reçu ;
déterminer (304) si le niveau d'interférence détecté est bas ; et
caractérisé en ce que, si le niveau d'interférence détecté est bas, estimer (308) le niveau d'interférence
par au moins une des étapes suivantes: estimer dans seulement une direction radiale
ou annuler la rotation du signal reçu avant d'estimer le niveau d'interférence.
2. Procédé selon la revendication 1, dans lequel le niveau d'interférence est détecté
en estimant une qualité du signal reçu et déterminer si le niveau d'interférence détecté
est bas inclut de déterminer si la qualité a franchi un seuil prédéterminé.
3. Procédé selon la revendication 2, dans lequel la qualité est un rapport de l'énergie
chip sur l'énergie d'interférence.
4. Procédé selon la revendication 3, dans lequel la qualité est une puissance de code
de signal reçue divisée par un indicateur d'intensité de signal reçue.
5. Procédé selon la revendication 1, dans lequel la direction radiale est parallèle à
un axe de coordonnée réel.
6. Procédé selon la revendication 5, dans lequel le niveau d'interférence est estimé
dans seulement une direction radiale seulement

et

où I
iDPCH est une estimation d'un niveau d'interférence sur un premier canal DPCH pour une
prise de récepteur i,
IiCPICH est une estimation d'un niveau d'interférence sur un second canal CPICH pour la prise
i, k est un index temporel, SF
C est un facteur d'étalement pour le second canal, SF
D est un facteur d'étalement pour le premier canal, N
C est un nombre de symboles par intervalle sur le second canal, ϕ est un angle de ĥ
CPICH,i, y
CPICH,i (k) est un symbole pilote de désétalement du second canal à l'instant k pour la prise
i, ĥ
CPICH,i est une estimation de canal du second canal pour la prise i et

est un symbole pilote du second canal à l'instant k.
7. Procédé selon la revendication 1, dans lequel le signal reçu subit une annulation
de rotation en estimant (402) une erreur de fréquence résiduelle, et les symboles
d'annulation de rotation (404) dans le signal reçu avec un déphasagecorrespondant
pour chaque symbole, les déphasages correspondants étant donnés par:

où
ỹCPICH,i (k) sont les symboles ayant subi une annulation de rotation d'un canal CPICH, k est
un index, f
e est l'erreur de fréquence résiduelle, N
C est un nombre de symboles par intervalle sur le canal, et R
C est un débit de symboles sur le canal, et en utilisant les symboles ayant subi une
annulation de rotation
ỹCPICH,i (k) pour estimer le niveau d'interférence.
8. Procédé selon la revendication 1, dans lequel le récepteur fonctionne dans un système
de communication sans fil à accès multiple par répartition de code large bande.
9. Dispositif d'estimation d'un niveau d'interférence d'un signal reçu dans un récepteur
(200), comprenant:
un détecteur (208,210) configuré pour détecter un niveau d'interférence du signal
reçu ; et
un processeur (212) configuré pour déterminer si le niveau d'interférence détecté
est bas ; caractérisé en ce que le processeur est en outre configuré pour, si le niveau d'interférence détecté est
bas, estimer le niveau d'interférence par au moins une des étapes suivantes: estimer
dans seulement une direction radiale ou annuler la rotation du signal reçu avant d'estimer
le niveau d'interférence.
10. Dispositif selon la revendication 9, dans lequel le détecteur (208,210) détecte le
niveau d'interférence en estimant une qualité du signal reçu et le processeur (212)
détermine si la qualité a franchi un seuil prédéterminé.
11. Dispositif selon la revendication 10, dans lequel la qualité est un rapport de l'énergie
chip sur l'énergie d'interférence.
12. Dispositif selon la revendication 11, dans lequel le qualité est une puissance de
code de signal reçu divisée par un indicateur d'intensité de signal reçue.
13. Dispositif selon la revendication 9, dans lequel la direction radiale est parallèle
à un axe de coordonnée réel.
14. Dispositif selon la revendication 13, dans lequel le processeur (212) est configuré
pour estimer le niveau d'interférence dans seulement une direction radiale selon

et

où I
iDPCH est une estimation d'un niveau d'interférence sur un premier canal DPCH pour une
prise de récepteur i,
IiCPICH est une estimation d'un niveau d'interférence sur un second canal CPICH pour la prise
i, k est un index temporel, SF
C est un facteur d'étalement pour le second canal, SF
D est un facteur d'étalement pour le premier canal, N
C est un nombre de symboles par intervalle sur le second canal, ϕ est un angle de ĥ
CPICH,i y
CPICH,i (k) est un symbole pilote de désétalement du second canal à l'instant k pour la prise
i, ĥ
CPICH,i est une estimation de canal du second canal pour la prise i et
ukCPICH est un symbole pilote du second canal à l'instant k.
15. Dispositif selon la revendication 9, dans lequel le processeur (212) est configuré
pour annuler la rotation du signal reçu en estimant une erreur de fréquence résiduelle,
et les symboles d'annulation de rotation (404) dans le signal reçu avec un déphasagecorrespondant
pour chaque symbole, les déphasages correspondants étant donnés par:

où
ỹCPICH,i (k) sont les symboles ayant subi une annulation de rotation d'un canal CPICH, k est
un index, f
e est l'erreur de fréquence résiduelle, N
C est un nombre de symboles par intervalle sur le canal, et R
C est un débit de symboles sur le canal, et en utilisant les symboles ayant subi une
annulation de rotation
ỹCPICH,i (k) pour estimer le niveau d'interférence.
16. Dispositif selon la revendication 9, dans lequel le récepteur (200) fonctionne dans
un système de communication sans fil à accès multiple par répartition de code large
bande.
17. Support de mémorisation lisible par ordinateur contenant un programme informatique
pour estimer un niveau d'interférence d'un signal reçu dans un récepteur, dans lequel
le programme informatique effectue les étapes consistant à:
détecter (302) un niveau d'interférence du signal reçu ;
déterminer (304) si le niveau d'interférence détecté est bas ; et
caractérisé en ce que le programme informatique effectue en outre, si le niveau d'interférence détecté
est bas, l'estimation (308) du niveau d'interférence par au moins par au moins une
des étapes suivantes: estimer dans seulement une direction radiale ou annuler la rotation
du signal reçu avant d'estimer le niveau d'interférence.
18. Support selon la revendication 17, dans lequel le niveau d'interférence est détecté
en estimant une qualité du signal reçu et déterminer si le niveau d'interférence détecté
est bas inclut de déterminer si la qualité a franchi un seuil prédéterminé.
19. Support selon la revendication 17, dans lequel le niveau d'interférence dans seulement
une direction radiale selon

et

où I
iDPCH est une estimation d'un niveau d'interférence sur un premier canal DPCH pour une
prise de récepteur i,
IiCPICH est une estimation d'un niveau d'interférence sur un second canal CPICH pour la prise
i, k est un index temporel, SF
C est un facteur d'étalement pour le second canal, SF
D est un facteur d'étalement pour le premier canal, N
C est un nombre de symboles par intervalle sur le second canal, ϕ est un angle de ĥ
CPICH,i, y
CPICH,i (k) est un symbole pilote de désétalement du second canal à l'instant k pour la prise
i, ĥ
CPICH,i est une estimation de canal du second canal pour la prise i et
ukCPICH est un symbole pilote du second canal à l'instant k.
20. Support selon la revendication 17, dans lequel le signal reçu subit une annulation
de rotation en estimant (402) une erreur de fréquence résiduelle, et en annulant la
rotation (404) des symboles dans le signal reçu avec un déphasage correspondant pour
chaque symbole, les déphasages correspondants étant donnés par:

où
ỹCPICH,i (k) sont les symboles ayant subi une annulation de rotation d'un canal CPICH, k est
un index, f
e est l'erreur de fréquence résiduelle, N
C est un nombre de symboles par intervalle sur le canal, et R
C est un débit de symboles sur le canal, et en utilisant les symboles ayant subi une
annulation de rotation
ỹCPICH,i (k) pour estimer le niveau d'interférence.